US6436965B1 - PDE IV inhibiting amides, compositions and methods of treatment - Google Patents
PDE IV inhibiting amides, compositions and methods of treatment Download PDFInfo
- Publication number
- US6436965B1 US6436965B1 US09/797,083 US79708301A US6436965B1 US 6436965 B1 US6436965 B1 US 6436965B1 US 79708301 A US79708301 A US 79708301A US 6436965 B1 US6436965 B1 US 6436965B1
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- United States
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- bnzl
- pyr
- och
- alkyl
- phe
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- 238000011282 treatment Methods 0.000 title abstract description 22
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- 150000001408 amides Chemical class 0.000 title description 13
- 230000002401 inhibitory effect Effects 0.000 title description 2
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- 230000001404 mediated effect Effects 0.000 claims abstract description 6
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- 125000001559 cyclopropyl group Chemical group [H]C1([H])C([H])([H])C1([H])* 0.000 claims description 29
- 125000004178 (C1-C4) alkyl group Chemical group 0.000 claims description 26
- 125000005843 halogen group Chemical group 0.000 claims description 25
- 125000002147 dimethylamino group Chemical group [H]C([H])([H])N(*)C([H])([H])[H] 0.000 claims description 20
- -1 3-pyridylmethyl Chemical group 0.000 claims description 19
- 125000001997 phenyl group Chemical group [H]C1=C([H])C([H])=C(*)C([H])=C1[H] 0.000 claims description 18
- 125000002496 methyl group Chemical group [H]C([H])([H])* 0.000 claims description 13
- 125000004076 pyridyl group Chemical group 0.000 claims description 13
- 125000004169 (C1-C6) alkyl group Chemical group 0.000 claims description 12
- 125000000217 alkyl group Chemical group 0.000 claims description 12
- 125000003917 carbamoyl group Chemical group [H]N([H])C(*)=O 0.000 claims description 12
- 125000003831 tetrazolyl group Chemical group 0.000 claims description 12
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Classifications
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- C07D—HETEROCYCLIC COMPOUNDS
- C07D401/00—Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, at least one ring being a six-membered ring with only one nitrogen atom
- C07D401/02—Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, at least one ring being a six-membered ring with only one nitrogen atom containing two hetero rings
- C07D401/12—Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, at least one ring being a six-membered ring with only one nitrogen atom containing two hetero rings linked by a chain containing hetero atoms as chain links
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- A61P19/08—Drugs for skeletal disorders for bone diseases, e.g. rachitism, Paget's disease
- A61P19/10—Drugs for skeletal disorders for bone diseases, e.g. rachitism, Paget's disease for osteoporosis
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- A61P25/28—Drugs for disorders of the nervous system for treating neurodegenerative disorders of the central nervous system, e.g. nootropic agents, cognition enhancers, drugs for treating Alzheimer's disease or other forms of dementia
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- A61P9/10—Drugs for disorders of the cardiovascular system for treating ischaemic or atherosclerotic diseases, e.g. antianginal drugs, coronary vasodilators, drugs for myocardial infarction, retinopathy, cerebrovascula insufficiency, renal arteriosclerosis
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07D—HETEROCYCLIC COMPOUNDS
- C07D209/00—Heterocyclic compounds containing five-membered rings, condensed with other rings, with one nitrogen atom as the only ring hetero atom
- C07D209/02—Heterocyclic compounds containing five-membered rings, condensed with other rings, with one nitrogen atom as the only ring hetero atom condensed with one carbocyclic ring
- C07D209/04—Indoles; Hydrogenated indoles
- C07D209/30—Indoles; Hydrogenated indoles with hetero atoms or with carbon atoms having three bonds to hetero atoms with at the most one bond to halogen, directly attached to carbon atoms of the hetero ring
- C07D209/42—Carbon atoms having three bonds to hetero atoms with at the most one bond to halogen, e.g. ester or nitrile radicals
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07D—HETEROCYCLIC COMPOUNDS
- C07D401/00—Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, at least one ring being a six-membered ring with only one nitrogen atom
- C07D401/14—Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, at least one ring being a six-membered ring with only one nitrogen atom containing three or more hetero rings
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07D—HETEROCYCLIC COMPOUNDS
- C07D403/00—Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, not provided for by group C07D401/00
- C07D403/02—Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, not provided for by group C07D401/00 containing two hetero rings
- C07D403/12—Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, not provided for by group C07D401/00 containing two hetero rings linked by a chain containing hetero atoms as chain links
Definitions
- This invention relates to compounds and pharmaceutical compositions for the treatment of diseases by raising the level of cyclic adenosine-3′,5′-monophosphate (cAMP) through the inhibition of phosphodiesterase IV (PDE IV).
- cAMP cyclic adenosine-3′,5′-monophosphate
- PDE IV phosphodiesterase IV
- cAMP 3′,5′-cyclic adenosine monophosphate
- the cellular levels of cAMP are regulated by mechanisms which control synthesis and breakdown.
- the synthesis of cAMP is controlled by adenyl cyclase which may be directly activated by agents such as forskolin or indirectly activated by the binding of specific agonists to cell surface receptors which are coupled to adenyl cyclase.
- the breakdown of cAMP is controlled by a family of phosphodiesterase (PDE) isoenzymes, which also control the breakdown of guanosine 3′,5′-cyclic monophosphate (cGMP).
- PDE phosphodiesterase
- PDE I-VII the distribution of which varies from tissue to tissue. This suggests that specific inhibitors of PDE isoenzymes could achieve differential elevation of cAMP in different tissues [for reviews of PDE distribution, structure, function and regulation, see Beavo & Reifsnyder (1990) TIPS, 11: 150-155, Nicholson et. al. (1991) TIPS, 12: 19-27, and Torphy and Undem (1991) Thorax, 46: 512-523].
- PDE isotype selective inhibitors have enabled the role of PDEs in a variety of cell types to be investigated.
- PDE IV controls the breakdown of cAMP in many inflammatory cells, for example, basophils (Peachell P. T. et al., (1992) J. Immunol., 148: 2503-2510) and eosinophils (Dent G. et al., (1991) Br. J. Pharmacol., 103: 1339-1346) and that inhibition of this isotype is associated with the inhibition of cell activation.
- basophils Peachell P. T. et al., (1992) J. Immunol., 148: 2503-2510
- eosinophils Denseosinophils
- inhibition of this isotype is associated with the inhibition of cell activation.
- elevation of cAMP in airway smooth muscle has a spasmolytic effect. Consequently PDE IV inhibitors are currently being developed as potential anti-inflammatory drugs particularly for the prophyl
- PDE IV inhibitors for the treatment of inflammatory diseases such as asthma, has met with limited success to date. Many of the PDE IV inhibitors which have been synthesised have lacked potency and/or inhibit more than one type of PDE isoenzyme in a non-selective manner. PDE IV inhibitors that are relatively potent and selective for PDE IV, are reported to be emetic as well. Indeed this side effect has been so universal that experts have expressed their belief that the emesis experienced upon administration of a PDE IV inhibitor may be mechanism based.
- the compounds described herein are potent inhibitors of PDE IV at concentrations that exhibit little or no inhibitory action on other PDE isoenzymes. These compounds inhibit the human recombinant PDE IV enzyme and also elevate cAMP in isolated leukocytes. Certain compounds prevent inflammation in the lungs induced by carrageenan, platelet-activating factor (PAF), interleukin-5 (IL-5) or antigen challenge. These compounds also suppress the hyperresponsiveness of airway smooth muscle seen in inflamed lungs.
- PAF platelet-activating factor
- IL-5 interleukin-5
- compounds according to the invention have good oral activity, and at orally effective doses exhibit little or none of the side-effects associated with known PDE IV inhibitors, such as rolipram.
- the compounds of the invention are therefore of use in medicine, especially in the prophylaxis and treatment of asthma and other inflammatory conditions.
- Z 1 , Z 2 , Z 3 and Z 4 represents N or CR 2 and the others represent CR 2 ;
- a 0 or 1
- b 0, 1 or 2;
- d 0, 1 or 2;
- R 1 represents H, C 1-4 alkyl or hydroxyC 1-4 alkyl
- each R 2 is independently selected from the group consisting of:
- each R a is independently selected from H, C 1-4 alkyl, C 1-4 alkylNHC 1-4 alkyl, and C 1-4 alkylN(C 1-4 alkyl) 2 , the alkyl portions of which are optionally substituted with 1-3 halo groups;
- each R b is selected from H and C1-7alkyl, and when two R b 's are present, they can be taken together and represent a fused ring system having 5-10 members, said ring system being saturated or containing 1-4 double bonds, and optionally including 1-3 heteroatoms selected from O, S and NR e ;
- R d and R e are independently selected from Het, C 1-7 alkyl, C 2-7 alkenyl, C 2-7 alkynyl, and C 1-7 alkyl-Het;
- Het represents a 5-10 membered aromatic, partially aromatic or non-aromatic ring system containing 1-4 heteroatoms selected from O, S and N, optionally substituted on any available position with oxo, C 1-4 alkyl, halo, amino, hydroxyC 1-4 alkyl, haloC 1-4 alkyl and aminoC 1-4 alkyl;
- X represents C 3-7 cycloalkyl or Ar
- each Ar is independently selected from the group consisting of: phenyl, thienyl, thiazolyl, pyridyl, oxazolyl, tetrazolyl, pyrimidinyl, pyrazinyl and pyridazinyl,
- said Ar being optionally substituted with 1-4 members selected from: halo, hydroxy, CN, C 1-4 alkyl, C 1-6 haloalkyl, C 1-6 hydroxyalkyl, OC 1-6 alkyl, OC 1-6 haloalkyl, OC 1-6 hydroxyalkyl, C 1-6 alkylOC 1-6 alkyl, C 1-6 alkylOC 1-6 haloalkyl, C(O)NH 2 , C(O)NHC 1-6 alkyl, C(O)N(C 1-6 alkyl) 2 , C 1-6 alkylOC 1-6 alkylC(O)NH 2 , CO 2 H, CO 2 C 1-6 alkyl, NHC(O)C 1-6 alkyl, NHC(O)OC 1-6 alkyl, and SO 2 C 1-6 alkyl.
- 1-4 members selected from: halo, hydroxy, CN, C 1-4 alkyl, C 1-6 haloalkyl, C 1-6 hydroxyalkyl
- compositions and methods of treatment are also included.
- the invention encompasses compounds represented by formula I:
- Z 1 , Z 2 , Z 3 and Z 4 represents N or CR 2 and the others represent CR 2 ;
- a 0 or 1
- b 0, 1 or 2;
- d 0, 1 or 2;
- R 1 represents H, C 1-4 alkyl or hydroxyC 1-4 alkyl
- each R 2 is independently selected from the group consisting of:
- each R a is independently selected from H, C 1-4 alkyl, C 1-4 alkylNHC 1-4 alkyl, and C 1-4 alkylN(C 1-4 alkyl) 2 , the alkyl portions of which are optionally substituted with 1-3 halo groups;
- each R b is selected from H and C1-7alkyl, and when two R b 's are present, they can be taken together and represent a fused ring system having 5-10 members, said ring system being saturated or containing 1-4 double bonds, and optionally including 1-3 heteroatoms selected from O, S and NR e ;
- R d and R e are independently selected from Het, C 1-7 alkyl, C 2-7 alkenyl, C 2-7 alkynyl, and C 1-7 alkyl-Het;
- Het represents a 5-10 membered aromatic, partially aromatic or non-aromatic ring system containing 1-4 heteroatoms selected from O, S and N, optionally substituted on any available position with oxo, C 1-4 alkyl, halo, amino, hydroxyC 1-4 alkyl, haloC 1-4 alkyl and aminoC 1-4 alkyl;
- X represents C 3-7 cycloalkyl or Ar
- each Ar is independently selected from the group consisting of: phenyl, thienyl, thiazolyl, pyridyl, oxazolyl, tetrazolyl, pyrimidinyl, pyrazinyl and pyridazinyl,
- said Ar being optionally substituted with 1-4 members selected from: halo, hydroxy, CN, C 1-4 alkyl, C 1-6 haloalkyl, C 1-6 hydroxyalkyl, OC 1-6 alkyl, OC 1-6 haloalkyl, OC 1-6 hydroxyalkyl, C 1-6 alkylOC 1-6 alkyl, C 1-6 alkylOC 1-6 haloalkyl, C(O)NH 2 , C(O)NHC 1-6 alkyl, C(O)N(C 1-6 alkyl) 2 , C 1-6 alkylOC 1-6 alkylC(O)NH 2 , CO 2 H, CO 2 C 1-6 alkyl, NHC(O)C 1-6 alkyl, NHC(O)OC 1-6 alkyl, and SO 2 C 1-6 alkyl.
- 1-4 members selected from: halo, hydroxy, CN, C 1-4 alkyl, C 1-6 haloalkyl, C 1-6 hydroxyalkyl
- Alkyl includes straight, branched and cyclic groups containing the indicated number of carbon atoms. If no number is specified, C 1-6 alkyl is appropriate.
- Alkenyl refers to a carbon containing group having from 2-7 carbon atoms unless otherwise indicated, and 1-3 carbon-carbon double bonds. It can be straight, branched or cyclic as appropriate.
- Alkynyl refers to a carbon containing group having from 2-7 carbon atoms, and 1-3 carbon-carbon triple bonds. It can be straight, branched or cyclic.
- Halo includes F, I, Br and Cl. When haloalkyl is indicated, this includes monohalogenated alkyl groups containing the indicated number of carbon atoms, dihalo, trihalo, etc. up to perhaloalkyl groups.
- Het represents a 5-10 membered aromatic, partially aromatic or non-aromatic ring system containing 1-4 heteroatoms selected from O, S and N, optionally substituted on any available position with oxo, C 1-4 alkyl, halo, amino, hydroxyC 1-4 alkyl, haloC 1-4 alkyl and aminoC 1-4 alkyl.
- heteroaryl rings such as pyridine, pyrrole, pyrimidine, imidazole, triazole, tetrazole, and the like
- non-aromatic rings such as piperidine, pyrrolidine and the like.
- Ar is an aromatic ring and is selected from the group consisting of: phenyl, thienyl, thiazolyl, pyridyl, oxazolyl, tetrazolyl, pyrimidinyl, pyrazinyl and pyridazinyl.
- the Ar moiety is optionally substituted with 1-4 members selected from: halo, hydroxy, CN, C 1-4 alkyl, C 1-6 haloalkyl, C 1-6 hydroxyalkyl, OC 1-6 alkyl, OC 1-6 haloalkyl, OC 1-6 hydroxyalkyl, C 1-6 alkylOC 1-6 alkyl, C 1-6 alkylOC 1-6 haloalkyl, CN, C(O)NH 2 , C(O)NHC 1-6 alkyl, C(O)N(C 1-6 alkyl)2, C 1-6 alkylOC 1-6 alkylC(O)NH 2 , CO 2 H, CO 2 C 1-6 alkyl, NHC(O)C 1-6 alkyl, C 1-6 alkylOC(O)NH and SO 2 C 1-6 alkyl.
- 1-4 members selected from: halo, hydroxy, CN, C 1-4 alkyl, C 1-6 haloalkyl, C 1-6 hydroxyal
- cAMP cyclic adenosine-3′,5′-monophosphate
- NSAID non-steroidal anti-inflammatory drug
- OXONE® 2KHSO 5 .KHSO 4 .K 2 SO 4
- SAM aminosulfonyl or sulfonamide or SO 2 NH 2
- TMS-CF 3 trimethyl(trifluoromethyl)silane
- all four of Z 1 , Z 2 , Z 3 and Z 4 represent CR 2 .
- all other variables are as originally defined.
- b represents 0 or 1.
- all other variables are as originally defined.
- d represents 1. Within this aspect of the invention, all other variables are as originally defined.
- R 1 represents H or CH 3 .
- all other variables are as originally defined.
- each R 2 is independently selected from the group consisting of H, C 1-8 alkyl, hydroxyC 1-8 alkyl, CO 2 R a , C 1-8 alkylN(R b ) 2 and C(O)N(R b ) 2 .
- R b is selected from H and C 1-3 alkyl.
- X represents Ar and Ar is independently selected from the group consisting of: phenyl, pyridyl and tetrazolyl,
- Ar being optionally substituted with 1-4 members selected from: halo, CN, C 1-4 alkyl, C 1-6 haloalkyl, OC 1-6 alkyl, OC 1-6 haloalkyl, C 1-6 hydroxyalkyl, C(O)NH 2 , C(O)NHC 1-6 alkyl, C(O)N(C 1-6 alkyl) 2 , CO 2 H, CO 2 C 1-6 alkyl, NHC(O)C 1-6 alkyl, NHC(O)OC 1-6 alkyl and SO 2 C 1-6 alkyl.
- 1-4 members selected from: halo, CN, C 1-4 alkyl, C 1-6 haloalkyl, OC 1-6 alkyl, OC 1-6 haloalkyl, C 1-6 hydroxyalkyl, C(O)NH 2 , C(O)NHC 1-6 alkyl, C(O)N(C 1-6 alkyl) 2 , CO 2 H, CO 2 C 1-6 alky
- Z 1 , Z 2 , Z 3 and Z 4 represent CR 2 ;
- each R 2 is independently selected from the group consisting of H, C 1-8 alkyl, hydroxyC 1-8 alkyl, CO 2 R a , C 1-8 alkylN(R b ) 2 and C(O)N(R b ) 2 wherein R b is selected from H and C 1-3 alkyl;
- b 0 or 1
- d 1;
- R 1 represents H or CH 3 ;
- Ar is independently selected from the group consisting of: phenyl, pyridyl and tetrazolyl, said Ar being optionally substituted with 1-4 members selected from: halo, CN, C 1-4 alkyl, C 1-6 haloalkyl, OC 1-6 alkyl, OC 1-6 haloalkyl, C 1-6 hydroxyalkyl, C(O)NH 2 , C(O)NHC 1-6 alkyl, C(O)N(C 1-6 alkyl) 2 , CO 2 H, CO 2 C 1-6 alkyl, NHC(O)C 1-6 alkyl, NHC(O)OC 1-6 alkyl and SO 2 C 1-6 alkyl.
- all other variables are as originally defined.
- a subset of compounds that is of interest relates to compounds of formula Ia wherein Z 1 , Z 2 , Z 3 and Z 4 represent CR 2 .
- all variables are as originally defined.
- each R 2 is independently selected from the group consisting of H, C 1-8 alkyl, hydroxyC 1-8 alkyl, CO 2 R a , C 1-8 alkylN(R b ) 2 and C(O)N(R b ) 2 wherein R a is independently selected from H and C 1-4 alkyl, and R b is selected from H and C 1-3 alkyl.
- each Ar is selected from phenyl, pyridyl and tetrazolyl, optionally substituted with 1-4 members selected from: halo, CN, C 1-4 alkyl, C 1-6 haloalkyl, OC 1-6 alkyl, OC 1-6 haloalkyl, C 1-6 hydroxyalkyl, C(O)NH 2 , C(O)NHC 1-6 alkyl, C(O)N(C 1-6 alkyl) 2 , CO 2 H, CO 2 C 1-6 alkyl, NHC(O)C 1-6 alkyl, NHC(O)OC 1-6 alkyl and SO 2 C 1-6 alkyl.
- all other variables are as originally defined.
- Examples of compounds falling within the present invention include the following:
- the invention encompasses a pharmaceutical composition comprised of a compound of formula I in combination with a pharmaceutically acceptable carrier.
- the invention encompasses pharmaceutical compositions for the treatment or prevention of diseases or conditions benefited by the inhibition of PDE IV, resulting in an elevation of cAMP, comprising a pharmaceutically acceptable carrier and a non-toxic therapeutically effective amount of compound of Formula I as described above.
- compositions of the present invention comprise a compound of Formula I as an active ingredient or a pharmaceutically acceptable salt, thereof, and also contain a pharmaceutically acceptable carrier and optionally other therapeutic ingredients.
- salts derived from inorganic bases include aluminum, ammonium, calcium, copper, ferric, ferrous, lithium, magnesium, manganic salts, manganous, potassium, sodium, zinc, and the like. Particularly preferred are the ammonium, calcium, magnesium, potassium, and sodium salts.
- Salts derived from pharmaceutically acceptable organic non-toxic bases include salts of primary, secondary, and tertiary amines, substituted amines including naturally occurring substituted amines, cyclic amines, and basic ion exchange resins, such as arginine, betaine, caffeine, choline, N,N-dibenzylethylenediamine, diethylamine, 2-diethylaminoethanol, 2-dimethylaminoethanol, ethanolamine, ethylenediamine, N-ethylmorpholine, N-ethylpiperidine, glucamine, glucosamine, histidine, hydrabamine, isopropylamine, lysine, methylglucamine, morpholine, piperazine, piperidine, polyamine resins, procaine, purines, theobromine, triethylamine, trimethylamine, tripropylamine, tromethamine and the like.
- basic ion exchange resins such as argin
- the compounds described herein contain one or more asymmetric centers and thus give rise to diastereomers and optical isomers.
- the present invention includes all such possible diastereomers as well as their racemic and resolved, enantiomerically pure forms and pharmaceutically acceptable salts thereof.
- Compounds according to the invention are selective and potent inhibitors of PDE IV.
- the ability of the compounds to act in this way may be determined by the tests described in the Examples hereinafter.
- the compounds according to the invention are thus of particular use in the prophylaxis and treatment of human diseases where an unwanted inflammatory response or muscular spasm (for example bladder or alimentary smooth muscle spasm) is present and where the elevation of cAMP levels may be expected to prevent or alleviate the inflammation and relax muscle.
- an unwanted inflammatory response or muscular spasm for example bladder or alimentary smooth muscle spasm
- the elevation of cAMP levels may be expected to prevent or alleviate the inflammation and relax muscle.
- Particular uses to which the compounds of the invention may be put include the prophylaxis and treatment of asthma, especially inflamed lung associated with asthma, cystic fibrosis, or in the treatment of inflammatory airway disease, chronic bronchitis, eosinophilic granuloma, psoriasis and other benign and malignant proliferative skin diseases, endotoxic shock, septic shock, ulcerative colitis, Crohn's disease, reperfusion injury of the myocardium and brain, inflammatory arthritis, osteoporosis, chronic glomerulonephritis, atopic dermatitis, urticaria, adult and infant respiratory distress syndrome, diabetes, diabetes insipidus, allergic rhinitis, allergic conjunctivitis, vernal conjunctivitis, arterial restenosis and atherosclerosis.
- Compounds of the invention also suppress neurogenic inflammation through elevation of cAMP in sensory neurons. They are, therefore, analgesic, antitussive and anti-hyperalgesic in inflammatory diseases associated with irritation and pain.
- Compounds of the invention also elevate cAMP in lymphocytes and thereby suppress unwanted lymphocyte activation in immune-based diseases such as rheumatoid arthritis, ankylosing spondylitis, transplant rejection and graft versus host disease.
- Compounds of the invention also reduce gastric acid secretion and therefore can be used to treat conditions associated with hypersecretion of gastric acid.
- Compounds of the invention suppress cytokine synthesis by inflammatory cells in response to immune or infectious stimulation. They are, therefore, useful in the treatment of bacterial, fungal or viral induced sepsis and septic shock in which cytokines such as tumour necrosis factor (TNF) are key mediators. Also compounds of the invention suppress inflammation and pyrexia due to cytokines and are, therefore, useful in the treatment of inflammation and cytokine-mediated chronic tissue degeneration which occurs in diseases such as rheumatoid or osteoarthritis.
- cytokines such as tumour necrosis factor (TNF) are key mediators.
- TNF tumour necrosis factor
- cytokines such as TNF in bacterial, fungal or viral infections, or in diseases such as cancer, leads to cachexia and muscle wasting.
- Compounds of the invention ameliorate these symptoms with a consequent enhancement of quality of life.
- Compounds of the invention also elevate cAMP in certain areas of the brain and thereby counteract depression and memory impairment.
- Compounds of the invention suppress cell proliferation in certain tumor cells and can be used, therefore, to prevent tumor growth and invasion of normal tissues.
- the compounds may be administered to a mammalian patient in need of such prevention, prophylaxis or treatment, in an amount that is effective for preventing, controlling or treating the disease.
- the compounds of the invention are effective in the treatment of humans.
- the compounds of Formula I may be administered orally, topically, parenterally, by inhalation spray or rectally in the form of a pharmaceutical composition as described herein.
- parenteral as used herein includes subcutaneous, intravenous, intramuscular or intrasternal injection or infusion techniques.
- composition containing the active ingredient may be in a form suitable for oral use, for example, as tablets, troches, lozenges, aqueous or oily suspensions, dispersible powders or granules, emulsions, hard or soft capsules, syrups or elixirs.
- Compositions intended for oral use may be prepared according to any method known in the art for the manufacture of pharmaceutical compositions, and such compositions may contain one or more agents selected from the group consisting of sweetening agents, flavoring agents, coloring agents and preserving agents in order to provide pharmaceutically elegant and palatable preparations. Tablets contain the active ingredient in admixture with non-toxic pharmaceutically acceptable excipients which are suitable for the manufacture of tablets.
- excipients may be for example, inert diluents, such as calcium carbonate, sodium carbonate, lactose, calcium phosphate or sodium phosphate; granulating and disintegrating agents, for example, corn starch or alginic acid; binding agents, for example starch, gelatin or acacia, and lubricating agents, for example, magnesium stearate, stearic acid or talc.
- the tablets may be uncoated or they may be coated by known techniques to delay disintegration and absorption in the gastrointestinal tract and thereby provide a sustained action over a longer period.
- a time delay material such as glyceryl monostearate or glyceryl distearate may be employed. They may also be coated by the technique described in the U.S. Pat. Nos. 4,256,108; 4,166,452; and 4,265,874 to form osmotic therapeutic tablets for control release.
- Formulations for oral use may also be presented as hard gelatin capsules wherein the active ingredient is mixed with an inert solid diluent, for example, calcium carbonate, calcium phosphate or kaolin, or as soft gelatin capsules wherein the active ingredients is mixed with water or an oil medium, for example peanut oil, liquid paraffin or olive oil.
- an inert solid diluent for example, calcium carbonate, calcium phosphate or kaolin
- the active ingredients is mixed with water or an oil medium, for example peanut oil, liquid paraffin or olive oil.
- Aqueous suspensions contain the active material in admixture with excipients suitable for the manufacture of aqueous suspensions.
- excipients are suspending agents, for example sodium carboxymethyl-cellulose, methylcellulose, hydroxy-propylmethycellulose, sodium alginate, polyvinyl-pyrrolidone, gum tragacanth and gum acacia; dispersing or wetting agents may be a naturally-occurring phosphatide, for example lecithin, or condensation products of an alkylene oxide with fatty acids, for example polyoxyethylene stearate, or condensation products of ethylene oxide with long chain aliphatic alcohols, for example heptadecaethylene-oxycetanol, or condensation products of ethylene oxide with partial esters derived from fatty acids and a hexitol such as polyoxyethylene sorbitol monooleate, or condensation products of ethylene oxide with partial esters derived from fatty acids and hexitol anhydrides, for example polyethylene sorb
- the aqueous suspensions may also contain one or more preservatives, for example ethyl, or n-propyl, p-hydroxybenzoate, one or more coloring agents, one or more flavoring agents, and one or more sweetening agents, such as sucrose, saccharin or aspartame.
- preservatives for example ethyl, or n-propyl, p-hydroxybenzoate
- coloring agents for example ethyl, or n-propyl, p-hydroxybenzoate
- coloring agents for example ethyl, or n-propyl, p-hydroxybenzoate
- flavoring agents such as sucrose, saccharin or aspartame.
- sweetening agents such as sucrose, saccharin or aspartame.
- Oily suspensions may be formulated by suspending the active ingredient in a vegetable oil, for example arachis oil, olive oil, sesame oil or coconut oil, or in mineral oil such as liquid paraffin.
- the oily suspensions may contain a thickening agent, for example beeswax, hard paraffin or cetyl alcohol. Sweetening agents such as those set forth above, and flavoring agents may be added to provide a palatable oral preparation. These compositions may be preserved by the addition of an anti-oxidant such as ascorbic acid.
- Dispersible powders and granules suitable for preparation of an aqueous suspension by the addition of water provide the active ingredient in admixture with a dispersing or wetting agent, suspending agent and one or more preservatives.
- a dispersing or wetting agent e.g., glycerol, glycerol, glycerol, glycerol, glycerol, glycerol, glycerin, glycerin, glycerin, glycerin, glycerin, sorbitol, sorbitol, sorbitol, sorbitol, sorbitol, sorbitol, sorbitol, sorbitol, sorbitol, sorbitol, glycerol, glycerol, glycerol, glycerol, glycerol, glycerol, glycerol, glycerol, glycerol
- the pharmaceutical compositions of the invention may also be in the form of an oil-in-water emulsions.
- the oily phase may be a vegetable oil, for example olive oil or arachis oil, or a mineral oil, for example liquid paraffin or mixtures of these.
- Suitable emulsifying agents may be naturally-occurring phosphatides, for example soy bean, lecithin, and esters or partial esters derived from fatty acids and hexitol anhydrides, for example sorbitan monooleate, and condensation products of the said partial esters with ethylene oxide, for example polyoxyethylene sorbitan monooleate.
- the emulsions may also contain sweetening and flavouring agents.
- Syrups and elixirs may be formulated with sweetening agents, for example glycerol, propylene glycol, sorbitol or sucrose. Such formulations may also contain a demulcent, a preservative and flavoring and coloring agents.
- the pharmaceutical compositions may be in the form of a sterile injectable aqueous or oleagenous suspension. This suspension may be formulated according to the known art using those suitable dispersing or wetting agents and suspending agents which have been mentioned above.
- the sterile injectable preparation may also be a sterile injectable solution or suspension in a non-toxic parenterally-acceptable diluent or solvent, for example as a solution in 1,3-butanediol.
- Suitable vehicles and solvents that may be employed are water, Ringer's solution and isotonic sodium chloride solution.
- sterile, fixed oils are conventionally employed as a solvent or suspending medium.
- any bland fixed oil may be employed including synthetic mono- or diglycerides.
- fatty acids such as oleic acid find use in the preparation of injectables.
- Compounds of Formula I may also be administered in the form of a suppositories for rectal administration of the drug.
- These compositions can be prepared by mixing the drug with a suitable non-irritating excipient which is solid at ordinary temperatures but liquid at the rectal temperature and will therefore melt in the rectum to release the drug. Examples of such materials include cocoa butter and polyethylene glycols.
- topical use creams, ointments, jellies, solutions or suspensions, etc., containing the compound of Formula I are employed. (For purposes of this application, topical application shall include mouth washes and gargles.)
- the compounds of formula I can also be used in combination with another active ingredient or ingredients.
- an antiinflammatory or analgesic agent such as an opiate agonist, a lipoxygenase inhibitor, such as an inhibitor of 5-lipoxygenase, a cyclooxygenase inhibitor, such as a cyclooxygenase-2 inhibitor, an interleukin inhibitor, such as an interleukin-1 inhibitor, an NMDA antagonist, an inhibitor of nitric oxide or an inhibitor of the synthesis of nitric oxide, a non-steroidal antiinflammatory agent, or a cytokine-suppressing antiinflammatory agent, for example with a compound such as acetaminophen, asprin, codeine, fentanyl, ibuprofen, indomethacin, ketorolac, morphine, naproxen, phenacetin, piroxicam, a steroidal analgesic, suf
- the instant compounds may be administered with a pain reliever; a potentiator such as caffeine, an H2-antagonist, simethicone, aluminum or magnesium hydroxide; a decongestant such as phenylephrine, phenylpropanolamine, pseudophedrine, oxymetazoline, ephinephrine, naphazoline, xylometazoline, propylhexedrine, or levo-desoxyephedrine; an antiitussive such as codeine, hydrocodone, caramiphen, carbetapentane, or dextramethorphan; a diuretic; and a sedating or non-sedating antihistamine such as loratidine.
- a pain reliever such as caffeine, an H2-antagonist, simethicone, aluminum or magnesium hydroxide
- a decongestant such as phenylephrine, phenylpropanolamine, pseudophedrine, oxymetazoline,
- compounds of the present invention may be used in combination with other drugs that are used in the treatment/prevention/suppression or amelioration of the diseases or conditions for which compounds of the present invention are useful.
- Such other drugs may be administered, by a route and in an amount commonly used therefor, contemporaneously or sequentially with a compound of the present invention.
- a pharmaceutical composition containing such other drugs in addition to the compound of the present invention is preferred.
- the pharmaceutical compositions of the present invention include those that also contain one or more other active ingredients, in addition to a compound of the present invention.
- Examples of other active ingredients that may be combined with a compound of the present invention, either administered separately or in the same pharmaceutical compositions, include, but are not limited to: (a) VLA-4 antagonists such as those described in U.S. Pat. No. 5,510,332, WO95/15973, WO96/01644, WO96/06108, WO96/20216, WO96/22966, WO96/31206, WO96/40781, WO97/03094, WO97/02289, WO98/42656, WO98/53814, WO98/53817, WO98/53818, WO98/54207, and WO98/58902; (b) steroids such as beclomethasone, methylprednisolone, betamethasone, prednisone, dexamethasone, and hydrocortisone; (c) immunosuppressants such as cyclosporin, tacrolimus, rapamycin and other FK-506 type immunosuppressants; (d
- Dosage levels of the order of from about 0.01 mg to about 140 mg/kg of body weight per day are useful in the treatment of the above-indicated conditions, or alternatively about 0.5 mg to about 7 g per patient per day.
- inflammation may be effectively treated by the administration of from about 0.01 to 50 mg of the compound per kilogram of body weight per day, or alternatively about 0.5 mg to about 3.5 g per patient per day.
- the amount of active ingredient that may be combined with the carrier materials to produce a single dosage form will vary depending upon the host treated and the particular mode of administration.
- a formulation intended for the oral administration to humans may contain from about 0.5 mg to about 5 g of active agent compounded with an appropriate and convenient amount of carrier material which may vary from about 5 to about 95 percent of the total composition.
- Unit dosage forms will generally contain between from as low as about 1 mg to as high as about 1500 mg of an active ingredient, typically 25 mg, 50 mg, 100 mg, 200 mg, 300 mg, 400 mg, 500 mg, 600 mg, 800 mg or 1000 mg.
- the compounds of Formula I of the present invention can be prepared according to the synthetic routes outlined in Schemes I to IV and by following the methods described herein.
- Addition of an appropriate electrophile such as a E 1 Br or E 1 Cl (wherein E 1 represents (CH 2 ) d —Ar in the presence of a base, followed by alkaline saponification of the ester group leads to III.
- Reaction of III with methyl bromoacetate, followed by esterification with diazomethane yields IV.
- Reaction with methoxide in methanol leads to the cyclization product V.
- VI Alkylation of the indanol with the appropriate electrophile such as E 2 Br (wherein E 2 represents (CH 2 ) b —X in the presence of a base and in a suitable solvent such as DMF gives VI.
- VI can be first saponified with conditions such as alcoholic NaOH, and then reacted with the NH 2 —Ar 1 in the presence of an amide coupling reagent such as DCC in an appropriate solvent to give VII.
- reaction with the E 1 electrophile may be conducted on IX to give XV, and the E 1 group carried through the same sequence to give the same product XIV.
- the resulting primary alcohol may further be transformed by a Mitsunobu type reaction to give XIX, which can undergo the rest of the sequence to give compounds of Formula I.
- Compounds of Formula IX may also be prepared by the method presented in Scheme 5 from an appropriately substituted methylated nitroaromatic (XXI).
- XXI methylated nitroaromatic
- This compound is treated with a strong base such as ethoxide in ethanol, and condensed onto ethyl oxalate to give, after saponification, the pyruvic acid XXII.
- This acid is then esterified with diazomethane, for example, and then treated with a reagent such as iron in acetic acid to give the compound IX (Methyl ester).
- Compounds of formula I may be prepared by reaction of XIV first with a suitable metallation agent, such as n-BuLi, followed by trapping with an electrophile such as DMF to produce the aldehyde, acetone to produce the t-alcohol, CO 2 to produce the carboxylic acid.
- a suitable metallation agent such as n-BuLi
- CHO-K1 cells were plated at a density of 10 6 cells/175 cm 2 containing complete media with 500 ⁇ g/ml hygromycin. The flasks were maintained in an incubator at 37° C. with 5.0% CO 2 for 72 hr. The media was changed and the cells were allowed to grow overnight. The cells were washed and dissociated from the plate with PBS containing 0.5 mM EDTA. Cellular cAMP content was measured by centrifuging the cell suspension at 150 g ⁇ 10 min. And resuspending the cells in a Hanks buffered salt solution at a density of 0.2 ⁇ 10 6 cells/ml. The cells were preincubated at room temperature for 15 min.
- PGI 2 prostaglandin I 2
- Basal cAMP levels were determined by incubating the cells in 0.1% DMSO. The incubations were terminated by the addition of HCl (0.1 N final) and the cells measured for cAMP as described below.
- Determinations of whole-cell cAMP content were performed by incubating 100 ⁇ l reconstituted rabbit anti-succinyl cAMP serum with 100 ⁇ l of the whole-cell reaction or known cAMP standard and 30 pmol of 125 I-cAMP TME in a ScintiStripTM well (300 ⁇ l final volume) at room temperature for 18 h. Total cpm (B o ) was determined in the absence of sample of cAMP standard. The reaction mixture was then aspirated out of the well, and the individual wells were counted in a Beckman LS 6000SC with the window open from 10-999 for 1 min.
- %B/B o [(standard or sample cpm ⁇ non-specific cpm)/(B o cpm ⁇ non-specific cpm)] ⁇ 100.
- Non-specific cpm were determined by incubating only the 125 I-cAMP TME with assay buffer (50 mM acetate; pH 5.8) in the ScintiStripTM well. All determinations were performed in triplicate.
- CHO-K1 cells were lysed by sonication for 10 secs at a power setting of 50% (Braunsonic Model 2000) in an ice cold solution containing 50 mM Tris, pH 7.5; 1 mM EDTA; and 200 ⁇ M ⁇ -mercaptoethanol.
- the soluble and particulate fractions of the cell were obtained by centrifuging the sonicate for 90 min. at 100,000 ⁇ g at 4° C.
- PDE activity was measured in a solution containing 50 mM Tris, pH 7.5; 10 mM MgCl 2 ; 1 mM EDTA; and 100 nM (or indicated) 3 H-cAMP (100 ⁇ l final volume) in the presence of varying concentrations of inhibitor.
- the reaction mixture containing enzyme was incubated for 10 min. at 30° C. in 96-well View Plates (Packard), and terminated by the addition of 50 ⁇ l Phosphodiesterase Scintillation Proximity Assay (SPA) Beads (Amersham) containing 18 mM ZnSO 4 .
- SPA Phosphodiesterase Scintillation Proximity Assay
- Beads Amersham
- the amount of 3 H-cAMP hydrolysis was determined by counting the plates in a Wallac 1450 ⁇ Beta LSC counter.
- the most potent compounds according to the Examples induced a concentration-dependent elevation of cAMP in neutrophils and/or eosinophils at concentrations of 0.1 nM to 1 ⁇ M.
- Guinea pigs were initially sensitised to ovalbumin under mild cyclophosphamide-induced immunosuppression, by intraperitoneal injection of antigen in combinations with aluminium hydroxide and pertussis vaccine.
- Booster doses of antigen were given two and four weeks later and at six weeks, animals were challenged with aerosolised ovalbumin whilst under cover of an intraperitoneally administered anti-histamine agent (mepyramine).
- BAL bronchial alveolar ravages
- test compound dissolved in 2 ul DMSO
- substrate buffer containing [2,8- 3 H] adenosine 3′,5′-cyclic phosphate (cAMP, 100 nM to 50 ⁇ M), 10 mM MgCl 2 , 1 mM EDTA, 50 mM Tris, pH 7.5.
- cAMP adenosine 3′,5′-cyclic phosphate
- the reaction was initiated by the addition of 10 ⁇ l of human recombinant PDE-IV (the amount was controlled so that ⁇ 10% product was formed in 10 min. at 30° C).
- the reaction was stopped after 10 min. by the addition of 1 mg of PDE-SPA beads (Amersham).
- the product AMP generated was quantified on a Microbeta 96-well plate counter.
- the signal in the absence of enzyme was defined as the background.
- 100% activity was defined as the signal detected in the presence of enzyme and DMSO with the background subtracted. Percentage of inhibition was calculated accordingly.
- IC 50 value was approximated with a non-linear regression fit of the standard 4-parameter/multiple binding sites equation from a ten point titration.
- Whole blood provides a protein and cell-rich milieu appropriate for the study of biochemical efficacy of anti-inflammatory compounds such as PDE IV-selective inhibitors.
- Normal non-stimulated human blood does not contain detectable levels of TNF- ⁇ and LTB 4 .
- activated monocytes Upon stimulation with LPS, activated monocytes expresss and secrete TNF- ⁇ up to 8 hours and plasma levels remain stable for 24 hours.
- LTB 4 synthesis is also sensitive to levels of intracellular cAMP and can be completely inhibited by PDE IV-selective inhibitors.
- DMSO vehicle
- test compound 1 ⁇ g/ml final concentration
- the supernatant was assayed for LTB 4 using an enzyme immunoassay kit (Cayman Chemicals #520111) according to the manufacturer's procedure.
- TNF- ⁇ was assayed in diluted plasma (in PBS) using an ELISA kit (Cistron Biotechnology) according to manufacturer's procedure.
- CHO-K1 cells were plated at a density of 10 6 cells/175 cm 2 containing complete media with 500 ⁇ g/ml hygromycin. The flasks were maintained in an incubator at 37° C. with 5.0% CO 2 for 72 hr. The media was changed and the cells were allowed to grow overnight. The cells were washed and dissociated from the plate with PBS containing 0.5 mM EDTA. Cellular cAMP content was measured by centrifuging the cell suspension at 150 g ⁇ 10 min. And resuspending the cells in a Hanks buffered salt solution at a density of 0.2 ⁇ 10 6 cells/ml. The cells were preincubated at room temperature for 15 min.
- PGI 2 prostaglandin I 2
- Basal cAMP levels were determined by incubating the cells in 0.1% DMSO. The incubations were terminated by the addition of HCl (0.1 N final) and the cells measured for cAMP as described below.
- Determinations of whole-cell cAMP content were performed by incubating 100 ⁇ l reconstituted rabbit anti-succinyl cAMP serum with 100 ⁇ l of the whole-cell reaction or known cAMP standard and 30 pmol of 125 I-cAMP TME in a ScintiStripTM well (300 ⁇ l final volume) at room temperature for 18 h. Total cpm (B o ) was determined in the absence of sample of cAMP standard. The reaction mixture was then aspirated out of the well, and the individual wells were counted in a Beckman LS 6000SC with the window open from 10-999 for 1 min.
- %B/B o [(standard or sample cpm ⁇ non-specific cpm)/(B o cpm ⁇ non-specific cpm)] ⁇ 100.
- Non-specific cpm were determined by incubating only the 125 I-cAMP TME with assay buffer (50 mM acetate; pH 5.8) in the ScintiStripTM well. All determinations were performed in triplicate.
- CHO-K1 cells were lysed by sonication for 10 secs at a power setting of 50% (Braunsonic Model 2000) in an ice cold solution containing 50 mM Tris, pH 7.5; 1 mM EDTA; and 200 ⁇ M ⁇ -mercaptoethanol.
- the soluble and particulate fractions of the cell were obtained by centrifuging the sonicate for 90 min. at 100,000 ⁇ g at 4° C.
- PDE activity was measured in a solution containing 50 mM Tris, pH 7.5; 10 mM MgCl 2 ; 1 mM EDTA; and 100 nM (or indicated) 3 H-cAMP (100 ⁇ l final volume) in the presence of varying concentrations of inhibitor.
- the reaction mixture containing enzyme was incubated for 10 min. at 30° C. in 96-well View Plates (Packard), and terminated by the addition of 50 ⁇ l Phosphodiesterase Scintillation Proximity Assay (SPA) Beads (Amersham) containing 18 mM ZnSO 4 .
- SPA Phosphodiesterase Scintillation Proximity Assay
- Beads Amersham
- the amount of 3 H-cAMT hydrolysis was determined by counting the plates in a Wallac 1450 ⁇ Beta LSC counter.
- the most potent compounds according to the Examples induced a concentration-dependent elevation of cAMP in neutrophils and/or eosinophils at concentrations of 0.1 M to 1 ⁇ M.
- Guinea pigs were initially sensitised to ovalbumin under mild cyclophosphamide-induced immunosuppression, by intraperitoneal injection of antigen in combinations with aluminium hydroxide and pertussis vaccine.
- Booster doses of antigen were given two and four weeks later and at six weeks, animals were challenged with aerosolised ovalbumin whilst under cover of an intraperitoneally administered anti-histamine agent (mepyramine).
- BAL bronchial alveolar lavages
- test compound dissolved in 2 ul DMSO
- substrate buffer containing [2,8- 3 H] adenosine 3′,5′-cyclic phosphate (cAMP, 100 nM to 50 ⁇ M), 10 mM MgCl 2 , 1 mM EDTA, 50 mM Tris, pH 7.5.
- cAMP adenosine 3′,5′-cyclic phosphate
- the reaction was initiated by the addition of 10 ⁇ l of human recombinant PDE-IV (the amount was controlled so that ⁇ 10% product was formed in 10 min. at 30° C.).
- the reaction was stopped after 10 min. by the addition of 1 mg of PDE-SPA beads (Amersham).
- the product AMP generated was quantified on a Microbeta 96-well plate counter.
- the signal in the absence of enzyme was defined as the background.
- 100% activity was defined as the signal detected in the presence of enzyme and DMSO with the background subtracted. Percentage of inhibition was calculated accordingly.
- IC 50 value was approximated with a non-linear regression fit of the standard 4-parameter/multiple binding sites equation from a ten point titration.
- Whole blood provides a protein and cell-rich milieu appropriate for the study of biochemical efficacy of anti-inflammatory compounds such as PDE IV-selective inhibitors.
- Normal non-stimulated human blood does not contain detectable levels of TNF- ⁇ and LTB 4 .
- activated monocytes Upon stimulation with LPS, activated monocytes expresss and secrete TNF- ⁇ up to 8 hours and plasma levels remain stable for 24 hours.
- LTB 4 synthesis is also sensitive to levels of intracellular cAMP and can be completely inhibited by PDE IV-selective inhibitors.
- DMSO vehicle
- test compound 1 ⁇ g/ml final concentration
- the supernatant was assayed for LTB 4 using an enzyme immunoassay kit (Cayman Chemicals #520111) according to the manufacturer's procedure.
- TNF- ⁇ was assayed in diluted plasma (in PBS) using an ELISA kit (Cistron Biotechnology) according to manufacturer's procedure.
- Lithium 3-pyridylamide has been prepared such as lithium N-isopropylcyclohexylamide: Paquette, L. A.; Ewing, G. D. J. Org. Chem . 1975, 40, 2965-2966.
- This crude diester was dissolved in 450 mL of MeOH containing 20 g of sodium methoxide, and refluxed for 30 min. This mixture is then cooled and acidified with 2N HCl and extracted with ethyl acetate. The organic phase was dried over MgSO 4 and evaporated to dryness. The solid is swished in 200 mL of 5% ethyl acetate in hexane to give the title compound as a white solid.
- Step 4 ⁇ 1-[(4-Fluorophenyl)methyl]-3-(phenylmethoxy)indol-2-yl ⁇ -N-(3-pyridyl)formamide
- the resulting reaction mixture was poured into a separatory funnel containing 50 mL H 2 O/50 mL EtOAc, the layers were separated, the aqueous layer was extracted with EtOAc (2 ⁇ 50 mL), the combined organic layers were washed with brine, dried over anhydrous MgSO 4 and concentrated.
- the resulting material was further purified by flash chromatography eluting with 50% EtOAc/hexanes to provide 42.4 mg of the title amide as an off-white solid.
- reaction mixture was poured into a separatory funnel containing 50 mL H 2 O/50 mL EtOAc, the layers were separated and the aqueous layer was extracted with EtOAc (2 ⁇ 25 mL). The combined organic layers were washed with brine, dried over anhydrous MgSO 4 , concentrated and purified by flash chromatography eluting with 30% EtOAc/hexanes. The title amide (175 mg) was obtained as an off-white solid.
- Step 1 ⁇ 1-[(4-Fluorophenyl)methyl]-3-methoxyindol-2-yl ⁇ -N-(3-pyridyl)formamide
- the title compound was prepared from 102 mg of methyl 1-[(4-fluorophenyl)methyl]-3-hydroxyindole-2-carboxylate and 50 mg of cyclopropanemethanol according to example 164 to yield 111 mg of a yellow solid.
- the title compound was prepared from 102 mg of methyl 1-[(4-fluorophenyl)methyl]-3-hydroxyindole-2-carboxylate and 59 mg of 4-pyridyl carbinol according to example 11, step 1, to yield 56 mg of a red solid.
- the title compound was prepared from 102 mg of methyl 1-[(4-fluorophenyl)methyl]-3-hydroxyindole-2-carboxylate and 94 mg of 3-methoxybenzyl alcohol according to example 164 to yield 63 mg of a white solid.
- the organic solvent was removed under vacuum and the crude material was hydrolyzed by treatment with 10 mL of Et 3 N in 300 mL of EtOH and heating to 70° C. for 30 min.
- the organic solvent was removed under vacuum and the crude material was dissolved in ethyl acetate and washed twice with 0.5 N HCl, brine and dried over anhydrous Na 2 SO 4 .
- the organic phase was concentrated and filtered over a pad of silica gel eluting with hot toluene.
- the organic phase was concentrated to dryness and the solid was swished with ethyl acetate and hexane to give 18.14 g of the title compound as a grey solid (>97% purity).
- Step 4 Ethyl 5-Bromo-1-[(4-fluorophenyl)methyl]-3-(phenylmethoxy)indole-2-carboxylate
- Step 5 ⁇ 5-Bromo-1-[(4-fluorophenyl)methyl]-3-(phenylmethoxy)indol-2-yl ⁇ -N-(3-pyridyl)formamide
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Abstract
Description
I | |
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Cpd | Z's | (CH2)b—(O)a—(CH2)b—X | N(R1)(CH2)a—Ar | (CH2)d—Ar |
1 | CH | OCH2-Phe-4-F | N(Me)-3-Pyr | Bnzl |
2 | CH | OCH2-Phe-4-F | N(Me)-4-Pyr | Bnzl |
3 | CH | OCH2-Phe-4-F | N(Me)-Phe-3,4-di- | Bnzl |
OMe | ||||
4 | CH | OCH2-Phe-4-F | N(Me)-Phe-3,4-di- | Bnzl |
F | ||||
5 | CH | OCH2-Phe-4-F | N(Me)-5-Pyr-2- | Bnzl |
OMe | ||||
6 | CH | OCH2-Phe-4-F | N(Me)-5-tetrazolyl | Bnzl |
7 | CH | OCH2-Phe-4-F | N(Me)-4-Pyr-2- | Bnzl |
OMe | ||||
8 | CH | OCH2-Phe-4-F | N(Me)-5-Pyr-2-CN | Bnzl |
9 | CH | OCH2-Phe-4-F | N(Me)-4-Pyr-2- | Bnzl |
OMe | ||||
10 | CH | O-Bnzl | NH-Phe-3,4-di- | Bnzl-4-F |
OMe | ||||
11 | CH | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
12 | CH | OCH2-Phe-3-OCF2H | NH-3-Pyr | Bnzl-3- |
OCF2H | ||||
13 | CH | OCH2-Phe-3-OCF2H | NH-4-Pyr | Bnzl-3- |
OCF2H | ||||
14 | CH | OCH2-Phe-3-OCF2H | NH-Phe-3,4-di- | Bnzl-3- |
OMe | OCF2H | |||
15 | CH | OCH2-Phe-3-OCF2H | NH-Phe-3,4-di-F | Bnzl-3- |
OCF2H | ||||
16 | CH | O-Bnzl | NH-3-Pyr | Bnzl-4- |
OCF2H | ||||
17 | CH | OCH2-Phe-3-OMe | NH-3-Pyr | Bnzl-4- |
OCF2H | ||||
18 | CH | OCH2-Phe-3-OMe | NH-5-tetrazolyl | Bnzl-4- |
OCF2H | ||||
19 | CH | OCH2-Phe-3-OMe | NH-4-Pyr-2-OMe | Bnzl-4- |
OCF2H | ||||
20 | CH | OCH2-Phe-3-OMe | NH-4-Pyr | Bnzl-4- |
OCF2H | ||||
21 | CH | OCH2-Phe-3-OMe | NH-4-Pyr-2- | Bnzl-4- |
NHC(O)Me | OCF2H | |||
22 | CH | OCH2-Phe-3-OMe | NH-3-Pyr | Bnzl-4-F |
23 | CH | OCH2-Phe-3-OMe | NH-5-tetrazolyl | Bnzl-4-F |
24 | CH | OCH2-Phe-3-OMe | NH-4-Pyr-2-OMe | Bnzl-4-F |
25 | CH | OCH2-Phe-3-OMe | NH-4-Pyr | Bnzl-4-F |
26 | CH | OCH2-Phe-3-OMe | NH-4-Pyr-2- | Bnzl-4-F |
NHC(O)Me | ||||
27 | CH | OCH2-Phe-3-OMe | NH-5-pyrimidinyl | Bnzl-4-F |
28 | CH | O-Bnzl | NH-3-Pyr | Bnzl-3,4-di- |
F | ||||
29 | CH | O-Bnzl | NH-4-Pyr | Bnzl-3,4-di- |
F | ||||
30 | CH | O-Bnzl | NH-Phe-3,4-di- | Bnzl-3,4-di- |
OMe | F | |||
31 | CH | O-Bnzl | NH-Phe-3,4-di-F | Bnzl-3,4-di- |
F | ||||
32 | CH | O-Bnzl | NH-5-Pyr-2-OMe | Bnzl-3,4-di- |
F | ||||
33 | CH | O-Bnzl | NH-5-tetrazolyl | Bnzl-3,4-di- |
F | ||||
34 | CH | O-Bnzl | NH-4-Pyr-2-OMe | Bnzl-3,4-di- |
F | ||||
35 | CH | O-Bnzl | NH-5-Pyr-2-CN | Bnzl-3,4-di- |
F | ||||
36 | CH | O-Bnzl | NH-5-Pyr-2- | Bnzl-3,4-di- |
NHC(O)Me | F | |||
37 | CH | OCH2-4-Pyr | NH-3-Pyr | Bnzl-4-CF3 |
38 | CH | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
39 | CH | OCH2-4-Pyr | NH-Phe-3,4-di- | Bnzl-4-CF3 |
OMe | ||||
40 | CH | OCH2-4-Pyr | NH-Phe-3,4-di-F | Bnzl-4-CF3 |
41 | CH | OCH2-4-Pyr | NH-5-Pyr-2-OMe | Bnzl-4-CF3 |
42 | CH | OCH2-4-Pyr | NH-5-tetrazolyl | Bnzl-4-CF3 |
43 | CH | OCH2-4-Pyr | NH-4-Pyr-2-OMe | Bnzl-4-CF3 |
44 | CH | OCH2-4-Pyr | NH-5-Pyr-2-CN | Bnzl-4-CF3 |
45 | CH | OCH2-4-Pyr | NH-5-Pyr-2- | Bnzl-4-CF3 |
NHC(O)Me | ||||
46 | CH | OCH2-4-Pyr | NH-3-Pyr | Bnzl |
47 | CH | OCH2-4-Pyr | NH-4-Pyr | Bnzl |
48 | CH | OCH2-4-Pyr | NH-Phe-3,4-di- | Bnzl |
OMe | ||||
49 | CH | OCH2-4-Pyr | NH-Phe-3,4-di-F | Bnzl |
50 | CH | OCH2-4-Pyr | NH-5-Pyr-2-OMe | Bnzl |
51 | CH | OCH2-4-Pyr | NH-5-tetrazolyl | Bnzl |
52 | CH | OCH2-4-Pyr | NH-4-Pyr-2-OMe | Bnzl |
53 | CH | OCH2-4-Pyr | NH-5-Pyr-2-CN | Bnzl |
54 | CH | OCH2-4-Pyr | NH-5-Pyr-2- | Bnzl |
NHC(O)Me | ||||
55 | CH | OCH2-4-Pyr | NH-4-Pyr-2- | Bnzl |
NHC(O)OEt | ||||
56 | CH | O-Bnzl | NH-3-Pyr | Bnzl |
57 | CH | O-Bnzl | NH-4-Pyr | Bnzl |
58 | CH | O-Bnzl | NH-Phe-3,4-di- | Bnzl |
OMe | ||||
59 | Z1 = N, all | O-Bnzl | NH-Phe-3,4-di-F | Bnzl |
others = CH | ||||
60 | Z1 = N, all | O-Bnzl | NH-5-Pyr-2-OMe | Bnzl |
others = CH | ||||
61 | CH | O-Bnzl | NH-5-tetrazolyl | Bnzl |
62 | CH | O-Bnzl | NH-4-Pyr-2-OMe | Bnzl |
63 | CH | O-Bnzl | NH-5-Pyr-2-CN | Bnzl |
64 | CH | O-Bnzl | NH-5-Pyr-2- | Bnzl |
NHC(O)Me | ||||
65 | CH | O-Bnzl | NH-4-Pyr-2- | Bnzl |
NHC(O)OEt | ||||
66 | CH | OCH2-4-Pyr | NH-3-Pyr | Bnzl-4- |
OCF2H | ||||
67 | CH | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4- |
OCF2H | ||||
68 | CH | OCH2-4-Pyr | NH-Phe-3,4-di- | Bnzl-4- |
OMe | OCF2H | |||
69 | CH | OCH2-4-Pyr | NH-Phe-3,4-di-F | Bnzl-4- |
OCF2H | ||||
70 | Z1 = N, all | OCH2-4-Pyr | NH-5-Pyr-2-OMe | Bnzl-4- |
others = CH | OCF2H | |||
71 | Z1 = N, all | OCH2-4-Pyr | NH-5-tetrazolyl | Bnzl-4- |
others = CH | OCF2H | |||
72 | Z1 = N, all | OCH2-4-Pyr | NH-4-Pyr-2-OMe | Bnzl-4- |
others = CH | OCF2H | |||
73 | CH | O-Bnzl | NH-3-Pyr | Bnzl-4-Me |
74 | CH | OCH2-4-Pyr | NH-5-Pyr-2-CN | Bnzl-4- |
OCF2H | ||||
75 | CH | OCH2-4-Pyr | NH-5-Pyr-2- | Bnzl-4- |
NHC(O)Me | OCF2H | |||
76 | Z4 = | OCH2-4-Pyr | NH-5-tetrazolyl | Bnzl-4-CF3 |
CC(Me)2OH | ||||
all others = CH | ||||
77 | Z4 = | OCH2-4-Pyr | NH-5-tetrazolyl | Bnzl-4-CF3 |
CCO2H | ||||
all others = CH | ||||
78 | Z4 = | OCH2-4-Pyr | NH-5-tetrazolyl | Bnzl-4-CF3 |
CCH2NMe2 | ||||
all others = CH | ||||
79 | Z4 = | OCH2-4-Pyr | NH-5-tetrazolyl | Bnzl-4-CF3 |
CC(O)NMe2 | ||||
all others = CH | ||||
80 | Z4 = CBr | OCH2-4-Pyr | NH-5-tetrazolyl | Bnzl-4-CF3 |
all others = CH | ||||
81 | Z4 = | OCH2-4-Pyr | NH-5-tetrazolyl | Bnzl-4-CF3 |
CSO2NH2 | ||||
all others = CH | ||||
82 | Z1 = | OCH2-4-Pyr | NH-5-tetrazolyl | Bnzl-4-CF3 |
CC(Me)2OH | ||||
all others = CH | ||||
83 | Z1 = | OCH2-4-Pyr | NH-5-tetrazolyl | Bnzl-4-CF3 |
CCO2H | ||||
all others = CH | ||||
84 | Z1 = | OCH2-4-Pyr | NH-5-tetrazolyl | Bnzl-4-CF3 |
CCH2NMe2 | ||||
all others = CH | ||||
85 | Z1 = | OCH2-4-Pyr | NH-5-tetrazolyl | Bnzl-4-CF3 |
CC(O)NMe2 | ||||
all others = CH | ||||
86 | Z1 = CBr | OCH2-4-Pyr | NH-5-tetrazolyl | Bnzl-4-CF3 |
all others = CH | ||||
87 | Z1 = | OCH2-4-Pyr | NH-5-tetrazolyl | Bnzl-4-CF3 |
CSO2NH2 | ||||
all others = CH | ||||
88 | Z1 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CC(Me)2OH | ||||
all others = CH | ||||
89 | Z1 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CCO2H | ||||
all others = CH | ||||
90 | Z1 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CCH2NMe2 | ||||
all others = CH | ||||
91 | Z1 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CC(O)NMe2 | ||||
all others = CH | ||||
92 | Z1 = CBr | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
all others = CH | ||||
93 | Z1 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CSO2NH2 | ||||
all others = CH | ||||
94 | Z1 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CC(Me)2OH | ||||
all others = CH | ||||
95 | Z1 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CCO2H | ||||
all others = CH | ||||
96 | Z1 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CCH2NMe2 | ||||
all others = CH | ||||
97 | Z1 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CC(O)NMe2 | ||||
all others = CH | ||||
98 | Z1 = CBr | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
all others = CH | ||||
99 | Z1 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CSO2NH2 | ||||
all others = CH | ||||
100 | Z4 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CC(Me)2OH | ||||
all others = CH | ||||
101 | Z4 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CCO2H | ||||
all others = CH | ||||
102 | Z4 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CCH2NMe2 | ||||
all others = CH | ||||
103 | Z4 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CC(O)NMe2 | ||||
all others = CH | ||||
104 | Z4 = CBr | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
all others = CH | ||||
105 | Z4 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CSO2NH2 | ||||
all others = CH | ||||
106 | Z4 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CC(Me)2OH | ||||
all others = CH | ||||
107 | Z4 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CCO2H | ||||
all others = CH | ||||
108 | Z4 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CCH2NMe2 | ||||
all others = CH | ||||
109 | Z4 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CC(O)NMe2 | ||||
all others = CH | ||||
110 | Z4 = CBr | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
all others = CH | ||||
111 | Z4 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CSO2NH2 | ||||
all others = CH | ||||
112 | Z3 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CC(Me)2OH | ||||
all others = CH | ||||
113 | Z3 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CCO2H | ||||
all others = CH | ||||
114 | Z3 = | OCH#-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CCH2NMe2 | ||||
all others = CH | ||||
115 | Z3 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CC(O)NMe2 | ||||
all others = CH | ||||
116 | Z3 = CBr | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
all others = CH | ||||
117 | Z3 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CSO2NH2 | ||||
all others = CH | ||||
118 | Z3 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CC(Me)2OH | ||||
all others = CH | ||||
119 | Z3 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CCO2H | ||||
all others = CH | ||||
120 | Z3 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CCH2NMe2 | ||||
all others = CH | ||||
121 | Z3 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CC(O)NMe2 | ||||
all others = CH | ||||
122 | Z3 = CBr | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
all others = CH | ||||
123 | Z3 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CSO2NH2 | ||||
all others = CH | ||||
124 | Z2 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CC(Me)2OH | ||||
all others = CH | ||||
125 | Z2 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CCO2H | ||||
all others = CH | ||||
126 | Z2 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CCH2NMe2 | ||||
all others = CH | ||||
127 | Z2 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CC(O)NMe2 | ||||
all others = CH | ||||
128 | Z2 = CBr | OCH2-4-Pyr | N}I-4-Pyr | Bnzl-4-CF3 |
all others = CH | ||||
129 | Z2 = | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-CF3 |
CSO2NH2 | ||||
all others = CH | ||||
130 | Z2 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CC(Me)2OH | ||||
all others = CH | ||||
131 | Z2 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CCO2H | ||||
all others = CH | ||||
132 | Z2 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CCH2NMe2 | ||||
all others = CH | ||||
133 | Z2 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CC(O)NMe2 | ||||
all others = CH | ||||
134 | Z2 = CBr | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
all others = CH | ||||
135 | Z2 = | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
CSO2NH2 | ||||
all others = CH | ||||
136 | CH | O-Bnzl | NH-3-Pyr | Bnzl-4- |
C(Me)2—OH | ||||
137 | CH | OCH2-3-Pyr | NH-3-Pyr | Bnzl-4-F |
138 | CH | OCH2-3-Pyr | NH-4-Pyr | Bnzl-4-F |
139 | CH | OCH2-3-Pyr | NH-Phe-3,4-di- | Bnzl-4-F |
OMe | ||||
140 | CH | OCH2-3-Pyr | NH-Phe-3,4-di-F | Bnzl-4-F |
141 | CH | OCH2-3-Pyr | NH-5-Pyr-2-OMe | Bnzl-4-F |
142 | CH | O-Bnzl | NH-3-Pyr | Bnzl-4- |
CO2Me | ||||
143 | CH | OCH2-3-Pyr | NH-5-tetrazolyl | Bnzl-4-F |
144 | CH | OCH2-3-Pyr | NH-4-Pyr-2-OMe | Bnzl-4-F |
145 | CH | OCH2-3-Pyr | NH-5-Pyr-2-CN | Bnzl-4-F |
146 | CH | OCH2-3-Pyr | NH-5-Pyr-2- | Bnzl-4-F |
NHC(O)Me | ||||
147 | CH | O-Bnzl | NH-Phe-3-SO2Me | Bnzl-4-F |
148 | CH | O-Bnzl | NH-3-Pyr | Bnzl-4-CF3 |
149 | CH | O—CH2-cPr | NH-Phe-3,4-di- | Bnzl-4-t-Bu |
OMe | ||||
150 | CH | O—CH2-cPr | NH-5-tetrazolyl | Bnzl-4-t-Bu |
151 | CH | O—CH2-cPr | NH-4-Pyr-2-OMe | Bnzl-4-t-Bu |
152 | CH | O—CH2-cPr | NH-5-Pyr-2-OMe | Bnzl-4-t-Bu |
153 | CH | O—CH2-cPr | NH-4-Pyr-2- | Bnzl-4-t-Bu |
NHC(O)OBt | ||||
154 | CH | O—CH2-cPr | NH-3-Pyr | Bnzl-4-F |
155 | CH | O—CH2-cPr | NH-4-Pyr | Bnzl-4-F |
156 | CH | O—CH2-cPr | NH-Phe-3,4-di- | Bnzl-4-F |
OMe | ||||
157 | CH | O—CH2-cPr | NH-Phe-3,4-di-F | Bnzl-4-F |
158 | CH | O—CH2-cPr | NH-5-Pyr-2-OMe | Bnzl-4-F |
159 | CH | O—CH2-cPr | NH-5-tetrazolyl | Bnzl-4-F |
160 | CH | O—CH2-cPr | NH-4-Pyr-2-OMe | Bnzl-4-F |
161 | CH | O—CH2-cPr | NH-5-Pyr-2- | Bnzl-4-F |
NHC(O)Me | ||||
162 | CH | OCH2-4-Pyr | NH-3-Pyr | Bnzl-4-F |
163 | CH | OCH2-4-Pyr | NH-4-Pyr | Bnzl-4-F |
164 | CH | OCH2-4-Pyr | NH-Phe-3,4-di- | Bnzl-4-F |
OMe | ||||
165 | CH | OCH2-4-Pyr | NH-Phe-3,4-di-F | Bnzl-4-F |
166 | CH | OCH2-4-Pyr | NH-5-Pyr-2-OMe | Bnzl-4-F |
167 | CH | OCH2-4-Pyr | NH-5-tetrazolyl | Bnzl-4-F |
168 | CH | OCH2-4-Pyr | NH-4-Pyr-2-OMe | Bnzl-4-F |
169 | CH | OCH2-4-Pyr | NH-5-Pyr-2-CN | Bnzl-4-F |
170 | CH | OCH2-4-Pyr | NH-5-Pyr-2- | Bnzl-4-F |
NHC(O)Me | ||||
171 | CH | OCH2-4-Pyr | NH-4-Pyr-2- | Bnzl-4-F |
NHC(O)OEt | ||||
172 | CH | O-Bnzl | NH-3-Pyr | Bnzl-4-t-Bu |
173 | CH | O-Bnzl | NH-3-Pyr | Bnzl-4-F |
174 | CH | O-Bnzl | NH-4-Pyr | Bnzl-4-F |
175 | CH | O-Bnzl | NH-Phe-3,4-di- | Bnzl-4-F |
OMe | ||||
176 | CH | O-Bnzl | NH-Phe-3,4-di-F | Bnzl-4-F |
177 | CH | O-Bnzl | NH-5-Pyr-2-OMe | Bnzl-4-F |
178 | CH | O-Bnzl | NH-5-tetrazolyl | Bnzl-4-F |
179 | CH | O-Bnzl | NH-4-Pyr-2-OMe | Bnzl-4-F |
180 | CH | O-Bnzl | NH-5-Pyr-2-CN | Bnzl-4-F |
181 | CH | O-Bnzl | NH-5-Pyr-2- | Bnzl-4-F |
NHC(O)Me | ||||
182 | CH | O-Bnzl | NH-4-Pyr-2- | Bnzl-4-F |
NHC(O)OEt | ||||
183 | CH | O-Bnzl | N(Me)-3-Pyr | Bnzl-4-F |
184 | CH | O-Bnzl | N(Me)-3-Pyr | Bnzl-4-CF3 |
185 | CH | O-Bnzl | 3-pyridylmethyl | Bnzl-4-F |
186 | CH | O-Bnzl | 4-pyridylmethyl | Bnzl-4-F |
Phe = phenyl, Bzyl = benzyl, Pyr = pyridyl |
Claims (17)
Priority Applications (1)
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US09/797,083 US6436965B1 (en) | 2000-03-02 | 2001-03-01 | PDE IV inhibiting amides, compositions and methods of treatment |
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US18657100P | 2000-03-02 | 2000-03-02 | |
US09/797,083 US6436965B1 (en) | 2000-03-02 | 2001-03-01 | PDE IV inhibiting amides, compositions and methods of treatment |
Publications (2)
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US20020068756A1 US20020068756A1 (en) | 2002-06-06 |
US6436965B1 true US6436965B1 (en) | 2002-08-20 |
Family
ID=22685460
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US (1) | US6436965B1 (en) |
EP (1) | EP1263728A2 (en) |
JP (1) | JP2003525273A (en) |
AU (1) | AU2001239051A1 (en) |
CA (1) | CA2401667A1 (en) |
WO (1) | WO2001064639A2 (en) |
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Also Published As
Publication number | Publication date |
---|---|
WO2001064639A3 (en) | 2002-02-28 |
CA2401667A1 (en) | 2001-09-07 |
US20020068756A1 (en) | 2002-06-06 |
AU2001239051A1 (en) | 2001-09-12 |
JP2003525273A (en) | 2003-08-26 |
WO2001064639A2 (en) | 2001-09-07 |
EP1263728A2 (en) | 2002-12-11 |
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